FIELD OF THE INVENTION
[0001] The present invention generally relates to a system for a transarterial chemoembolization
(TACE) of a region of interest compring a tumor, a method for determining a delivered
drug dose concentration in a region of interest comprising a tumor, a system for determining
a drug concentration in a region of interest comprising a tumor after a transarterial
TACE procedure and a computer program product for determining a drug concentration
in a region of interest comprising a tumor after a transarterial TACE procedure.
BACKGROUND OF THE INVENTION
[0002] Liver cancer is one of the most common cancers worldwide. Treatment options are limited
and clinical outcomes are generally poor with a median survival rate of less than
one year. Given the fact that liver cancer (primary and metastatic) is primarily supplied
by the hepatic artery and is generally confined to the liver, drug delivery directly
into the hepatic artery has been shown to be effective. Transarterial chemoembolization
(TACE) is an x-ray image guided, interventional oncology procedure in which chemotherapeutic
drug is delivered from a catheter in the hepatic artery. A system that may be used
with this procedure is shown in
WO 2010/007545 A1, which shows a spectral CT system with an injector capable of injecting two contrast
agents simultaneously.
[0003] There has been a shift in chemotherapeutic drug delivery system from conventional
lipiodol (cTACE) to drug-eluting microsphere beads (DEB-TACE). Drug-eluting microsphere
beads (DEBs) are small beads with a shell and a core which may be loaded with a drug,
such as chemotherapeutic agents, or other materials and which are capable of delivering
the load in a reproducible manner to a region of interest that leads to lower levels
of chemotherapy in plasma (less systemic exposure) and enhanced efficacy at the tumor
site (more tumor kill).
[0004] An issue with TACE procedures is that it is very difficult to determine whether the
intended drug dose actually reached the tumor. It is well known in chemotherapy medicine
that a sufficient drug dose concentration is needed for tumor kill. With DEB-TACE
some improvements were made regarding this issue. Since DEBs are usually radio-lucent,
in current clinical practice soluble x-ray contrast agent is mixed with DEBs to provide
a surrogate marker of DEB deposition. However, it is known that the two materials
can separate during delivery and thus provide false information about final DEB deposition
location. As such, a new kind of DEB was developed that is inherently radio-opaque
and thus provides direct visualization of bead deposition. In this case radio opacity
in the target region is directly related to drug dose.
[0005] Over the years, the DEB's sizes have become smaller, in general from 100-300 microns
to 75-150 microns in diameter. This smaller size allows for better tumor penetration.
However, there are two limitations: smaller beads carry a smaller drug payload, and
smaller beads are unable to embolize larger-sized tumor feeding vessels.
[0006] Also, it is known that the tumor core has a very different microenvironment than
the tumor rim and different drugs are needed for each. With TACE procedures, including
DEB-TACE, it is difficult to target and address both the core and rim effectively.
[0007] It would be highly desirable if a DEB-TACE method could target all areas in and around
the tumor effectively with a reliable indication of drug delivery to each area.
SUMMARY OF THE INVENTION
[0008] Embodiments according to the present invention are directed to a system for determining
drug concentrations during or after a transarterial chemoembolization (TACE) of a
region of interest comprising a tumor with an imaging system. An injector may be arranged
to introduce into the region of interest first drug-eluting microsphere beads containing
at least a first drug and a first contrast agent and to introduce into the region
of interest second drug-eluting microsphere beads containing at least a second drug
and a second contrast agent. The imaging system is arranged to obtain a first image
data set of the region of interest with at least a first x-ray radiation energy and
a second image data set of the region of interest with at least a second x-ray radiation
energy. The system further comprises a concentration determiner arranged to determine
a first drug concentration from the first image data set and a second drug concentration
from the second image data set.
[0009] In another preferred embodiment of the system the imaging system is a spectral computed
tomography imaging system, preferably a spectral computed tomography system that is
arranged to simultaneously obtain the first image data and second image data.
[0010] In another preferred embodiment of the system the first drug-eluting microsphere
beads have a size such that they can not penetrate into tumor core vessels, and the
second drug-eluting microsphere beads have a size such that they can penetrate into
tumor core vessels.
[0011] In another preferred embodiment of the system the first drug is different from the
second drug and/or wherein the first contrast agent is different from the second contrast
agent.
[0012] In another preferred embodiment of the system the at least first x-ray radiation
energy corresponds to a K-absorption edge of the first contrast agent and the at least
second x-ray radiation energy corresponds to a K-absorption edge of the second contrast
agent.
[0013] A further embodiment of the present invention is directed towards a method for determining
a delivered drug dose concentration in a region of interest comprising a tumor, comprising
the steps of obtaining a first image data set by imaging the region of interest with
an x-ray imaging device operating at at least a first x-ray radiation energy; determining,
from the first image data set, a first drug concentration delivered to the region
of interest by first drug-eluting microsphere beads containing at least a first drug
and a first contrast agent; obtaining a second image data set by imaging the region
of interest with an x-ray imaging device operating at at least a second x-ray radiation
energy; determining, from the second image data set, a second drug concentration delivered
to the region of interest by second drug-eluting microsphere beads containing at least
a second drug and a second contrast agent, wherein the first drug-eluting microsphere
beads have a larger diameter than the second drug-eluting microsphere beads.
[0014] Other embodiments of the present invention are directed towards a computer program
product for determining a first and second drug concentration in a tumor during or
after a transarterial chemoembolization procedure in which at least a first drug and
a second drug were delivered to the region of interest.
[0015] Still further aspects and embodiments of the present invention will be appreciated
by those of ordinary skill in the art upon reading and understanding the following
detailed description. Numerous additional advantages and benefits will become apparent
to those of ordinary skill in the art upon reading the following detailed description
of preferred embodiments.
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present invention is illustrated by drawings of which
Fig. 1 shows a schematic representation of a system for transarterial chemoembolization
according to the present invention.
Fig. 2 shows a schematic representation of two differently sized drug-eluting microsphere
beads.
Fig. 3 shows a schematic representation of arteries in a region of interest to which
two differently sized DEBs were administered.
Fig. 4 shows a simulated depiction of a CT reconstruction of a liver area in a patient
with an overlaid illustration of a size selective bead concentration.
Fig. 5 shows a block diagram of a TACE procedure (5A) and a subsequent method for
determining a delivered drug dose to a region of interest (5B).
Fig. 6 shows a schematic depiction of a kit-of-parts comprising first and second drug-eluting
microsphere beads.
[0017] The invention may take form in various components and arrangements of components,
and in various process operations and arrangements of process operations. The drawings
are only for the purpose of illustrating preferred embodiments and are not to be construed
as limiting the invention. To better visualize certain features may be omitted or
dimensions may be not be according to scale.
DETAILED DESRIPTION OF EMBODIMENTS
[0018] The invention will be illustrated by using spectral CT imaging, but another suitable
multi-energy imaging device or other imaging device with which it is possible to discriminate
between two materials could also be used. Furthermore, the present invention is directed
to treatment of liver cancer, but the invention is also easily adaptable to other
types of cancer and even to local drug treatment of other diseases.
[0019] Figure 1 depicts a schematic representation of a system for transarterial chemoembolization
10 with two main components: an imaging system 1 and an injecting device 7.
[0020] In this example, the imaging system 1 is a computed tomography imaging system in
which x-ray radiation is emitted in a radiation beam 6 from a source 4 towards a detector
5. Both are mounted opposite each other in a gantry 2, which is rotatable around an
examination area. During an imaging procedure a subject, such as a patient, is placed
on support 3 and translated trough the examination region and the radiation beam 6
while the gantry 2 rotates around the subject to obtain image data of the subject
that may be reconstructed to two-dimensional or three-dimensional images.
[0021] This invention will be particularly explained using spectral CT (sometimes also referred
to as dual source CT) as an example. In spectral CT x-ray radiation with different
energies are detected and processed. This may be achieved by adapting the source to
emit different wavelengths simultaneously or sequentially (e.g. in kVp switching x-ray
sources) or by adapting the detector to detect different individual parts of an emitted
wavelength spectrum. Different information may be derived from information obtained
from high-energy x-ray radiation and low-energy x-ray radiation. For instance, materials
may be distinguished from each other since different materials attenuate low and high
energy radiation differently.
[0022] An often used imaging method in spectral (and conventional) CT imaging is k-edge
imaging, usually of contrast agent materials. Due to the photoelectric absorptions
of photons in atoms of an imaged material, such as a contrast agent, a sudden, non-linear
increase in the attenuation coefficient of photons at an energy just above the binding
energy of the K-shell electron occurs. This sudden increase is called the k-edge,
which lies at different energies for different materials and therefore it can be separately
detected by imaging with different radiation energies, such as in spectral CT imaging.
And, as such, it is possible to identify different materials in a single imaging procedure.
[0023] Figure 1 also shows a schematic depiction of an injecting device 7, which is drawn
in a very basic form which only depicts examples of basic elements that could be part
of such an injector. In this embodiment the injector 7 comprises a first DEB reservoir
71 and a second DEB reservoir 72, which both are connected to injector 73. The injector
73 may for instance be a catheter or a syringe to introduce the DEBs 81, 82 into a
blood vessel, usually near the region of interest. According to the present invention
the first DEB reservoir 71 is to be loaded for use with first DEBs and the second
DEB reservoir is loaded with differently sized second DEBs. The skilled person would
understand that the injector 73 can have many different designs and also that the
DEB reservoirs 71, 72 can be connected to the injector in multiple manners. For instance,
the first and second DEB reservoirs 71, 72 may be combined into one reservoir if the
differently sized DEBs 81, 82 are already premixed. The injecting device 7 is preferably
placed close to the imaging system 1, but could also be placed away from the imaging
system 1, or even in a separate room.
[0024] Figure 2 shows schematic depictions of two differently sized DEBs 81, 82. DEBs are
available in various sizes, usually ranging between 50 and 1000 microns. Both DEBs
81, 82 comprise of a shell 811, 821 fully surrounding a central loading cavity 812,
822. The shell 811, 821 is preferably made of a biodegradable material, such as a
biodegradable polymer, for instance a polyvinyl alcohol hydrogel. Shell thickness
may vary for different DEB types and sizes. The central loading cavity 812, 822 is
filled with a drug, such as for instance doxorubicin, which is often used in TACE
procedures (doxorubicin DEBs are usually referred to in the trade as DEBDOX). The
central loading cavity 812, 822 is also filled with a contrast agent which facilitates
proper imaging of the beads in an imaging procedure, for instance contrast agents
based on Iodine, Gadolinium or other substances known to the skilled person. The contrast
agent preferably has a k-edge that is detectable by spectral CT imaging energies.
The DEBs are introduced into a patient's bloodstream and delivered to a tissue of
interest, where the drug is slowly released from the DEBs 81, 82.
[0025] As mentioned in the introduction, a size of the DEB determines the maximum drug load
and which vessels can be effectively embolized. In general, larger sized DEBs can
carry a higher drug load, but cannot embolize smaller vessels, particularly those
inside tumors. Smaller sized DEBs can embolize smaller vessels, but carry a lower
drug load and cannot effectively embolize larger vessels, such as tumor feeding vessels.
[0026] An insight that lies at the basis of many aspects of this invention is that a mixture,
or a subsequent administration, of differently sized DEBs 81, 82 introduced to a patient
overcomes these drawbacks. This is illustrated schematically in Figure 3. This figure
shows part of a blood vessel system of a patient including a feeding vessel 91 to
a tumor, for instance an hepatic artery leading to a liver tumor. At a tumor rim 92
the feeding vessel 91 splits up into many smaller tumor core vessels 93. In this embodiment
two differently sized DEBs were administered to the patient: large DEBs 81 with an
exemplary diameter of around 300 microns and small DEBs 82 with an exemplary diameter
of 75 microns. DEBs with other diameters and a larger number of differently sized
DEBs are of course also possible, depending on the different vessel sizes and can
be chosen by a physician on a case-by-case basis. The small DEBs 82 are able to embolize
the small tumor core vessels 93 to release the drug there locally. While small DEBs
82 are also present in the feeding vessel 91, they do not effectively embolize said
feeding vessel 91. The large DEBs however do embolize the feeding vessel 91 very well.
The large DEBs 81 are too large to enter the tumor core vessels 93 and will, in this
embodiment, not pass beyond the tumor rim 92. A good embolization of all relevant
vessels in around the tumor is obtained.
[0027] In a further embodiment of the present invention the large DEBs 81 and the small
DEBs 82 are loaded with different drugs. For example, the tumor core 93 is typically
hypoxic and so hypoxia-activated pro-drugs like TH-302 may have a greater efficacy
in tumor kill, while traditional chemotherapy for the area of the tumor rim 92 could
be used where there is normoxia. As such, the tumor can be treated more effectively
by targeting different parts of the tumor with different drugs. Potentially a better
targeted dosage regime of large and small DEBs 81, 82 may result in a more precise
drug dosage and therefore less side effects may be experienced by the patient. In
an embodiment of the present invention the small DEBs 82 are loaded with hypoxia-activated
pro-drugs like TH-302 and the large DEBs 82 are loaded with traditional chemotherapy
drugs. The two (or more) chemotherapeutic drugs, may be used either in combination
(first drug + second drug) or as a tumor microenvironment activated pro-drug (the
first drug is activated in tumor microenvironment and promotes efficacy of the second
drug). The first and second drug may have different concentrations. An alternative
option is that the first drug and second drug are the same, but that the concentration
is bead size specific. In all cases, other properties than the concentration (e.g.
drug release rate) may be chosen to be different for different bead sizes.
[0028] In a further embodiment of the present invention the large DEBs 81 and the small
DEBs 82 are loaded with different contrast agents. This facilitates imaging the large
DEBs 81 and the small DEBs 82 separately with energy resolving imaging systems, such
as spectral CT and k-edge imaging techniques. This avoids separation of the contrast
agents from the DEBs 81, 82 because the contrast agent is present within the bead.
As such, it is possible to more accurately determine if the DEBs 81, 82 have reached
their predetermined destination and if the vessels are properly embolized. When it
is known how many of the DEBs actually reach the intended region of interest, a more
precise dosage regime, e.g. lower doses and therefore less side effects, may be implemented.
[0029] Figure 4 depicts an exemplary, simulated CT reconstruction of a part of a patient's
body including a liver 9. The liver 9 has a tumor, which comprises actual tumor mass
containing tumor core vessels 93 and a blood supply area, which comprises at least
one feeding vessel 91. Large DEBs 81 and small DEBs 82 were previously administered
to the patient using injecting device 7. The liver 9 area was then imaged with a spectral
CT imaging device 10. In this embodiment the large DEBs 81 were loaded with a different
contrast agent (e.g. an Iodine based contrast agent) than the small DEBs 82 (e.g.
a Gadolinium based contrast agent). Through k-edge imaging both contrast agents are
individually identified and, as such, the location of the large DEBs 81 and the small
DEBs 82 in the tumor area is known and can be depicted, for instance, by presenting
this as an overlay over the CT image. In Figure 4 this is depicted as hatched areas
for the location 93' of the small DEBs 83 and a 90 degrees tilted (compared to the
small DEB area 93') hatched area for the location of the large DEBs 81. A physician
will immediately notice that the small DEBs 83 have penetrated into the tumor core,
while the large DEBs 81 have penetrated the blood supply area.
[0030] Inherently radio-opaque DEBs provides direct visualization of bead deposition. This
is a marked improvement in image-guided feedback. A degree of DEB radio-opacity is
directly related to the drug dose. Multi-energy imaging, such as spectral CT, has
the ability to image and quantitatively measure the DEB radio-opacity and thus the
actual drug dose at the tumor site. A DEB concentration determiner 11 is configured
to determine the drug concentration from obtained image data of the areas embolized
by DEBs. This is of extremely high added value to TACE procedures. As mentioned previously,
in TACE procedures it is actually very difficult to determine the drug dose that actually
reaches the tumor. It is well known in chemotherapy medicine that a sufficient drug
dose concentration is needed for tumor kill, but that many of the drugs unfortunately
have severe side effects. Therefore it is crucial to find an optimal balance between
sufficient drugs to treat the tumor, but not too much to severely discomfort an already
weakened patient. With the elements of the present invention the drug dose at the
tumor location and surrounding areas may be much more accurately and reliably determined.
This will assist the physician to better determine an optimal dose and increase tumor
treatment efficacy, while keeping side effects under control as much as possible,
which increases the patient's quality of life during the treatment and because of
that it might also improve treatment efficacy.
[0031] Figure 5A depicts a schematic flow chart of a TACE method comprising the steps of
administering 101 first DEBs containing at least a first drug and a first contrast
agent to a region of interest comprising a tumor, and administering 102 second DEBs
containing at least a second drug and a second contrast agent to the region of interest,
wherein the first DEBs have a larger diameter than the second DEBs. Preferably the
first and second DEBs contain different drugs and/or contrast agents.
[0032] Figure 5B depicts a schematic flow chart of a method for determining a delivered
drug dose concentration in a region of interest comprising a tumor, comprising the
steps of obtaining 201 a first image data set by imaging the region of interest with
an x-ray imager operating at a first x-ray radiation energy and determining 203, from
the first image data set, a first drug concentration delivered to the region of interest
by first DEBs containing at least a first drug and a first contrast agent, obtaining
202 a second image data set by imaging the region of interest with an x-ray imager
operating at a second x-ray radiation energy and determining 204, from the second
image data set, a second drug concentration delivered to the region of interest by
second DEBs containing at least a second drug and a second contrast agent, wherein
the first DEBs have a larger diameter than the second DEBs.
[0033] An imaging system 1 arranged to obtain a first image data set of the region of interest
with at least a first x-ray radiation energy and a second image data set of the region
of interest with at least a second x-ray radiation energy, such as a CT imaging system
or a cone-beam CT (CBCT) imaging system, is particularly suitable to determine concentrations.
When a concentration of the first and second drugs are know for the region (or respective
regions) of interest, this provides an excellent indication of the actually deliverd
drug dose to the region(s) of interest. A ratio of contrast to drug concentration
for every bead size is necessary to determine the specific drug dose. In imaging systems
which do not obtain image data at more than one energy level, e.g. MR imaging systems,
it is possible to distinguish microspheres of different sizes that contain different
contrast agents, but not to quantify the drug dose. After all, it is the chemotherapy
drug (or drugs) and not he contrast medium having the tumoricidal effect. And also,
the signal intensity from, for instance, MR imaging is in arbitrary units, whereas
the multi-energy based imaging provide absolute measurement units of concentration.
This is an inherent technical advantage of multi-energy imaging such as spectral CT
or CBCT imaging. Therefore, this not only provides absolute measurement metrics, the
TACE system of the present invention allows for inter-patient visualization and comparison
of drug delivery, which is important for image guidance and follow-up and for assessing
efficacy of treatment.
[0034] Preferably the x-ray imager operates at a first pair of x-ray energies to obtain
the first image data set and at a second pair of x-ray energies to obtain the second
data set, since this is a prerequisite for k-edge imaging of a contrast agent. Preferably
the image data sets are reconstructed to visual data and displayed to a physician
205. The visual data may comprise the location of the differently sized DEBs and/or
drug concentration at specific locations. This may be done by overlaying a CT image
with additional information, such as hatched or colored areas, numerical data on or
with the reconstructed CT image or any other suitable way of displaying visual data
known in the art.
[0035] The present invention also relates to an imaging system that is configured to determine
a drug concentration in a tumor after a TACE procedure. Said system comprises an imaging
system 10, preferably a spectral CT imaging system that can obtain data sets of areas
of interests that are embolized by at least two differently sized DEBs. These DEBs
may contain different drugs and/or contrast agents. The system further comprises a
concentration determiner 11 to determine the drug concentrations from the first and
second image data sets of each of the differently sized DEBs at a region of interest,
such as a tumor area including feeding areas and the tumor core. Preferably the image
data sets are reconstructed in a reconstructor to visual data that may be presented
to a physician on a display unit. The visual data may comprise the location of the
differently sized DEBs an/or drug concentration at specific locations. This may be
done by overlaying a CT image with additional information, such as hatched or colored
areas, numerical data on or with the CT image or any other suitable way of displaying
visual data known in the art.
[0036] The present invention further relates to a computer program product for determining
a drug concentration in a tumor after a transarterial chemoembolization (TACE) procedure
in which at least a first drug and a second drug were delivered to the region of interest,
comprising instructions to execute the steps of determining a first and a second drug
concentration a first and second image data set of the region of interest when the
computer program product is run on the computer. Preferably the first and second image
data set were obtained at different x-ray radiation energies, such as with a spectral
CT imaging device. Preferably the first and second drugs were delivered to the region
of interest by at least two differently sized DEBs, preferably containing different
drugs and/or contrast agents.
[0037] Figure 6 presents a schematic representation of a kit-of-parts 300 comprising a quantity
301 of first DEBs containing at least a first drug and a first contrast agent; and
a quantity 302 of second DEBs containing at least a second drug and a second contrast
agent. Preferably the first and second DEBs contain different drugs and/or contrast
agents. Either of the first or second DEBs may be DOXDEBs. The first and second quantity
of DEBs may be such that they are already provided in a desired quantity ratio. The
first and second DEBs may be provided separately or as a pre-mixed mixture.
[0038] While the invention has been illustrated and described in detail in the drawings
and foregoing description, such illustration and description are to be considered
illustrative or exemplary and not restrictive; the invention is not limited to the
disclosed embodiments.
[0039] Other variations to the disclosed embodiments can be understood and effected by those
skilled in the art in practicing the claimed invention, from a study of the drawings,
the disclosure, and the appended claims. In the claims, the word "comprising" does
not exclude other elements or steps, and the indefinite article "a" or "an" does not
exclude a plurality. A single processor or other unit may fulfill the functions of
several items recited in the claims. The mere fact that certain measures are recited
in mutually different dependent claims does not indicate that a combination of these
measured cannot be used to advantage. A computer program may be stored/distributed
on a suitable medium, such as an optical storage medium or a solid-state medium supplied
together with or as part of other hardware, but may also be distributed in other forms,
such as via the Internet or other wired or wireless telecommunication systems. Any
reference signs in the claims should not be construed as limiting the scope.
1. System (10) for determining during or after a transarterial chemoembolization a first
concentration of a first drug introduced by injecting into the region of interest
first drug-eluting microsphere beads (81) containing at least the first drug and a
first contrast agent and a second concentration of a drug introduced by injecting
into the region of interest second drug-eluting microsphere beads (82) containing
at least the second drug and a second contrast agent in a region of interest comprising
a tumor having tumor core vessels, comprising:
- an imaging system (1) arranged to obtain a first image data set of the region of
interest with at least a first x-ray radiation energy and a second image data set
of the region of interest with at least a second x-ray radiation energy; and
- a concentration determiner (11) arranged to determine the first drug concentration
from the first image data set and the second drug concentration from the second image
data set; wherein the first drug-eluting microsphere beads have a larger diameter
than the second drug-eluting microsphere beads.
2. System according to claim 1, further comprising an injecting device (7) arranged to
introduce into the region of interest the first drug-eluting microsphere beads (81)
and the second drug-eluting microsphere beads (82).
3. System according to claim 1 or 2, wherein the imaging system (1) is a spectral computed
tomography imaging system, preferably a spectral computed tomography system that is
arranged to simultaneously obtain the first image data and the second image data.
4. System according to any of the claims 1-3, wherein the first drug-eluting microsphere
beads (81) have a size such that they can not penetrate into the tumor core vessels
(93), and the second drug-eluting microsphere beads (82) have a size such that they
can penetrate into the tumor core vessels (93).
5. System according to any of the claims 1-4, wherein the first drug is different from
the second drug and/or wherein the first contrast agent is different from the second
contrast agent.
6. System according to any of the claims 1-5, wherein the at least first x-ray radiation
energy corresponds to a K-absorption edge of the first contrast agent and the at least
second x-ray radiation energy corresponds to a K-absorption edge of the second contrast
agent.
7. Method for determining a delivered drug dose concentration in a region of interest
comprising a tumor having tumor core vessels, comprising the steps of:
- obtaining (201) a first image data set by imaging the region of interest with an
x-ray imaging device (1) operating at at least a first x-ray radiation energy;
- determining (203), from the first image data set, a first drug concentration delivered
to the region of interest by first drug-eluting microsphere beads (81) containing
at least a first drug and a first contrast agent;
- obtaining (202) a second image data set by imaging the region of interest with an
x-ray imaging device (1) operating at at least a second x-ray radiation energy;
- determining (204), from the second image data set, a second drug concentration delivered
to the region of interest by second drug-eluting microsphere beads (82) containing
at least a second drug and a second contrast agent,
wherein the first drug-eluting microsphere beads have a larger diameter than the second
drug-eluting microsphere beads.
8. Method according to claim 7, wherein the first image data and the second image data
are obtained simultaneously, preferably by spectral computed tomography.
9. Method according to any of the claims 7-8, wherein the first drug-eluting microsphere
beads (81) have a size such that they can not penetrate into the tumor core vessels
(93), and the second drug-eluting microsphere beads (82) have a size such that they
can penetrate into the tumor core vessels (93).
10. Method according to any of the claims 7-9, wherein the first drug is different from
the second drug and/or wherein the first contrast agent is different from the second
contrast agent.
11. Method according to claim 7-10, wherein the at least first x-ray radiation energy
corresponds to a K-absorption edge of the first contrast agent and the at least second
x-ray radiation energy corresponds to a K-absorption edge of the second contrast agent.
12. Computer program product for determining a first and second drug concentration in
a region of interest comprising a tumor having tumor core vessels during or after
a transarterial chemoembolization procedure in which at least a first drug was delivered
to the region of interest by first drug-eluting microsphere beads (81) containing
at least a first drug and a first contrast agent, and in which at least a second drug
was delivered to the region of interest by second drug-eluting microsphere beads (82)
containing at least a second drug and a second contrast agent, wherein the first drug-eluting
microsphere beads have a larger diameter than the second drug-eluting microsphere
beads, comprising instructions to execute the steps of:
- determine a first drug concentration from a first image data set of the region of
interest obtained with at least a first x-ray radiation energy; and
- determine a second drug concentration from a second image data set of the region
of interest obtained with at least a second x-ray radiation energy,
when the computer program product is run on the computer.
1. System (10) zur Bestimmung während oder nach einer transarteriellen Chemoembolisation
einer ersten Konzentration eines ersten Wirkstoffs, der durch Injizieren in den interessierenden
Bereich von ersten wirkstofffreisetzenden Mikrosphärenkügelchen (81) eingeführt wurde,
die mindestens das erste Wirkstoff und ein erstes Kontrastmittel enthalten, und eine
zweite Konzentration eines Wirkstoffs, der durch Injizieren in den interessierenden
Bereich von zweiten wirkstofffreisetzenden Mikrosphärenkügelchen (82) eingeführt wurde,
die mindestens das zweite Wirkstoff und ein zweites Kontrastmittel enthalten, in einem
interessierenden Bereich umfassend einen Tumor mit Tumorkerngefäßen, umfassend:
- ein Abbildungssystem (1), das angeordnet ist, um einen ersten Bilddatensatz des
interessierenden Bereichs mit mindestens einer ersten Röntgenstrahlungsenergie und
einen zweiten Bilddatensatz des interessierenden Bereichs mit mindestens einer zweiten
Röntgenstrahlungsenergie zu erhalten; und
- einen Konzentration-Bestimmungseinheit (11), der angeordnet ist, um die erste Wirkstoffkonzentration
aus dem ersten Bilddatensatz und die zweite Wirkstoffkonzentration aus dem zweiten
Bilddatensatz zu bestimmen; wobei die ersten wirkstofffreisetzenden Mikrosphärenkügelchen
einen größeren Durchmesser als die zweiten wirkstofffreisetzenden Mikrosphärenkügelchen
aufweisen.
2. System nach Anspruch 1, ferner umfassend eine Injektionsvorrichtung (7), die angeordnet
ist, um die ersten wirkstofffreisetzenden Mikrosphärenkügelchen (81) und die zweiten
wirkstofffreisetzenden Mikrosphärenkügelchen (82) in den interessierenden Bereich
einzuführen.
3. System nach Anspruch 1 oder 2, wobei das Abbildungssystem (1) ein spektrales Computertomographie-Abbildungssystem
ist, vorzugsweise ein spektrales Computertomographie-System, das angeordnet ist, um
gleichzeitig die ersten Bilddaten und die zweiten Bilddaten zu erhalten.
4. System nach einem der Ansprüche 1 bis 3, wobei die ersten wirkstofffreisetzenden Mikrosphärenkügelchen
(81) eine solche Größe aufweisen, dass sie nicht in die Tumorkerngefäße (93) eindringen
können, und die zweiten wirkstofffreisetzenden Mikrosphärenkügelchen (82) eine solche
Größe aufweisen, dass sie in die Tumorkerngefäße eindringen können (93).
5. System nach einem der Ansprüche 1 bis 4, wobei sich das erste Wirkstoff von dem zweiten
Wirkstoff unterscheidet und/oder wobei sich das erste Kontrastmittel von dem zweiten
Kontrastmittel unterscheidet.
6. System nach einem der Ansprüche 1 bis 5, wobei die mindestens erste Röntgenstrahlungsenergie
einer K-Absorptionskante des ersten Kontrastmittels entspricht, und die mindestens
zweite Röntgenstrahlungsenergie einer K-Absorptionskante des zweiten Kontrastmittels
entspricht.
7. Verfahren zum Bestimmen einer abgegebenen Wirkstoffdosiskonzentration in einem interessierenden
Bereich umfassend einen Tumor mit Tumorkerngefäßen, umfassend die Schritte von:
- Erhalten (201) eines ersten Bilddatensatzes durch Abbilden des interessierenden
Bereichs mit einer Röntgenbildgebungsvorrichtung (1), die mit mindestens einer ersten
Röntgenstrahlungsenergie arbeitet;
- Bestimmen (203) aus dem ersten Bilddatensatz einer ersten Wirkstoffkonzentration,
die durch erste wirkstofffreisetzende Mikrosphärenkügelchen (81), die mindestens einen
ersten Wirkstoff und ein erstes Kontrastmittel enthalten, an den interessierenden
Bereich abgegeben wird;
- Erhalten (202) eines zweiten Bilddatensatzes durch Abbilden des interessierenden
Bereichs mit einer Röntgenbildgebungsvorrichtung (l), die mit mindestens einer zweiten
Röntgenstrahlungsenergie arbeitet;
- Bestimmen (204) aus dem zweiten Bilddatensatz einer zweiten Wirkstoffkonzentration,
die durch zweite wirkstofffreisetzende Mikrosphärenkügelchen (82), die mindestens
einen zweiten Wirkstoff und ein zweites Kontrastmittel enthalten, an den interessierenden
Bereich abgegeben wird,
wobei die ersten wirkstofffreisetzenden Mikrosphärenkügelchen einen größeren Durchmesser
als die zweiten wirkstofffreisetzenden Mikrosphärenkügelchen aufweisen.
8. Verfahren nach Anspruch 7, wobei die ersten Bilddaten und die zweiten Bilddaten gleichzeitig
erhalten werden, vorzugsweise durch spektrale Computertomographie.
9. Verfahren nach einem der Ansprüche 7 bis 8, wobei die ersten wirkstofffreisetzenden
Mikrosphärenkügelchen (81) eine solche Größe aufweisen, dass sie nicht in die Tumorkerngefäße
(93) eindringen können, und die zweiten wirkstofffreisetzenden Mikrosphärenkügelchen
(82) eine solche Größe aufweisen, dass sie in die Tumorkerngefäße eindringen können
(93).
10. Verfahren nach einem der Ansprüche 7 bis 9, wobei sich das erste Wirkstoff von dem
zweiten Wirkstoff unterscheidet und/oder wobei sich das erste Kontrastmittel von dem
zweiten Kontrastmittel unterscheidet.
11. Verfahren nach Anspruch 7 bis 10, wobei die mindestens erste Röntgenstrahlungsenergie
einer K-Absorptionskante des ersten Kontrastmittels entspricht, und die mindestens
zweite Röntgenstrahlungsenergie einer K-Absorptionskante des zweiten Kontrastmittels
entspricht.
12. Computerprogrammprodukt zum Bestimmen einer ersten und zweiten Wirkstoffkonzentration
in einem interessierenden Bereich umfassend einen Tumor mit Tumorkerngefäßen während
oder nach einem transarteriellen Chemoembolisierung-Verfahren, bei dem mindestens
ein erster Wirkstoff durch erste wirkstofffreisetzende Mikrosphärenkügelchen (81),
die mindestens einen ersten Wirkstoff und ein erstes Kontrastmittel enthalten, an
den interessierenden Bereich abgegeben wurde, und in denen mindestens ein zweiter
Wirkstoff durch zweite wirkstofffreisetzende Mikrosphärenkügelchen (82), die mindestens
einen zweiten Wirkstoff und ein zweites Kontrastmittel enthalten, in den interessierenden
Bereich abgegeben wurde, wobei die ersten wirkstofffreisetzenden Mikrosphärenkügelchen
einen größeren Durchmesser als die zweiten wirkstofffreisetzenden Mikrosphärenkügelchen
aufweisen, umfassend Anweisungen zum Ausführen der Schritte von:
- Bestimmen einer ersten Wirkstoffkonzentration aus einem ersten Bilddatensatz des
interessierenden Bereichs, der mit mindestens einer ersten Röntgenstrahlungsenergie
erhalten wurde; und
- Bestimmen einer zweiten Wirkstoffkonzentration aus einem zweiten Bilddatensatz des
interessierenden Bereichs, der mit mindestens einer zweiten Röntgenstrahlungsenergie
erhalten wurde,
wenn das Computerprogrammprodukt auf dem Computer ausgeführt wird.
1. Système (10) pour déterminer pendant ou après une chimio-embolisation transartérielle
une première concentration d'un premier médicament introduite par injection dans la
région d'intérêt de premières perles microsphèriques à élution de médicament (81)
contenant au moins le premier médicament et un premier agent de contraste et une deuxième
concentration d'un médicament introduite par injection dans la région d'intérêt de
deuxièmes perles microsphèriques à élution de médicament (82) contenant au moins le
deuxième médicament et un deuxième agent de contraste dans une région d'intérêt comprenant
une tumeur ayant des vaisseaux centraux tumoraux, comprenant:
- un système d'imagerie (1) agencé pour obtenir un premier ensemble de données d'image
de la région d'intérêt avec au moins une première énergie de rayonnement par des rayons
X et un deuxième ensemble de données d'image de la région d'intérêt avec au moins
une deuxième énergie de rayonnement par des rayons X; et
- un déterminant de concentration (11) agencé pour déterminer la première concentration
de médicament à partir du premier ensemble de données d'image et la deuxième concentration
de médicament à partir du deuxième ensemble de données d'image; où les premières perles
microsphèriques à élution de médicament ont un diamètre plus grand que les deuxièmes
perles microsphèriques à élution de médicament.
2. Système selon la revendication 1, comprenant en outre un dispositif d'injection (7)
agencé pour introduire dans la région d'intérêt les premières perles microsphèriques
à élution de médicament (81) et les deuxièmes perles microsphèriques à élution de
médicament (82).
3. Système selon la revendication 1 ou 2, dans lequel le système d'imagerie (1) est un
système d'imagerie par tomodensitométrie spectrale, de préférence un système de tomodensitométrie
spectrale qui est agencé pour obtenir simultanément les premières données d'image
et les deuxièmes données d'image.
4. Système selon l'une quelconque des revendications 1 à 3, dans lequel les premières
perles microsphèriques à élution de médicament (81) ont une taille telle qu'elles
ne peuvent pas pénétrer dans les vaisseaux centraux tumoraux (93), et les deuxièmes
sphères microsphèriques à élution de médicament (82) ont une taille telle qu'elles
peuvent pénétrer dans les vaisseaux centraux tumoraux (93).
5. Système selon l'une quelconque des revendications 1 à 4, dans lequel le premier médicament
est différent du deuxième médicament et/ou dans lequel le premier agent de contraste
est différent du deuxième agent de contraste.
6. Système selon l'une quelconque des revendications 1 à 5, dans lequel l'au moins première
énergie de rayonnement par des rayons X correspond à une arête d'absorption K du premier
agent de contraste et l'au moins deuxième énergie de rayonnement par des rayons X
correspond à une arête d'absorption K du deuxième agent de contraste.
7. Procédé pour déterminer une concentration de dose de médicament délivrée dans une
région d'intérêt comprenant une tumeur ayant des vaisseaux centraux tumoraux, comprenant
les étapes de:
- obtenir (201) un premier ensemble de données d'image par imagerie de la région d'intérêt
avec un dispositif d'imagerie à rayons X (1) fonctionnant avec au moins une première
énergie de rayonnement par des rayons X;
- déterminer (203), à partir du premier ensemble de données d'image, une première
concentration de médicament délivrée à la région d'intérêt par des premières perles
microsphèriques à élution de médicament (81) contenant au moins un premier médicament
et un premier agent de contraste;
- obtenir (202) un deuxième ensemble de données d'image par imagerie de la région
d'intérêt avec un dispositif d'imagerie à rayons X (l) fonctionnant avec au moins
une seconde énergie de rayonnement par des rayons X;
- déterminer (204), à partir du deuxième ensemble de données d'image, une deuxième
concentration de médicament délivrée à la région d'intérêt par des deuxièmes perles
microsphèriques à élution de médicament (82) contenant au moins un deuxième médicament
et un deuxième agent de contraste,
où les premières perles microsphèriques à élution de médicament ont un diamètre plus
grand que les deuxièmes perles microsphèriques à élution de médicament.
8. Procédé selon la revendication 7, dans lequel les premières données d'image et les
deuxièmes données d'image sont obtenues simultanément, de préférence par tomodensitométrie
spectrale.
9. Procédé selon l'une quelconque des revendications 7 à 8, dans lequel les premières
perles microsphèriques à élution de médicament (81) ont une taille telle qu'elles
ne peuvent pas pénétrer dans les vaisseaux centraux tumoraux (93), et les secondes
perles microsphèriques à élution de médicament (82) ont une taille telle qu'elles
peuvent pénétrer dans les vaisseaux centraux tumoraux (93).
10. Procédé selon l'une quelconque des revendications 7 à 9, dans lequel le premier médicament
est différent du deuxième médicament et/ou dans lequel le premier agent de contraste
est différent du deuxième agent de contraste.
11. Procédé selon les revendications 7 à 10, dans lequel l'au moins première énergie de
rayonnement par des rayons X correspond à une arête d'absorption K du premier agent
de contraste et l'au moins deuxième énergie de rayonnement par des rayons X correspond
à une arête d'absorption K du second agent de contraste.
12. Produit de programme informatique pour déterminer une première et une deuxième concentration
de médicament dans une région d'intérêt comprenant une tumeur ayant des vaisseaux
centraux tumoraux pendant ou après une procédure de chimio-embolisation transartérielle
où au moins un premier médicament a été délivré à la région d'intérêt par les premières
perles microsphèriques à élution de médicament (81) contenant au moins un premier
médicament et un premier agent de contraste, et où au moins un deuxième médicament
a été délivré dans la région d'intérêt par des deuxièmes perles microsphèriques à
élution de médicament (82) contenant au moins un deuxième médicament et un deuxième
agent de contraste, où les premières perles microsphèriques à élution de médicament
ont un diamètre plus grand que les deuxièmes perles microsphèriques à élution de médicament,
comprenant des instructions pour exécuter les étapes de:
- déterminer une première concentration de médicament à partir d'un premier ensemble
de données d'image de la région de intérêt obtenu avec au moins une première énergie
de rayonnement par des rayons X; et
- déterminer une deuxième concentration de médicament à partir d'un deuxième ensemble
de données d'image de la région d'intérêt obtenu avec au moins une deuxième énergie
de rayonnement de rayons X, lorsque le produit de programme informatique est exécuté
sur l'ordinateur.